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在 15 MHz/9.7 GHz 的水溶液中优化动态核极化实验:与 140 MHz/94 GHz 的 DNP 的比较研究。

Optimization of dynamic nuclear polarization experiments in aqueous solution at 15 MHz/9.7 GHz: a comparative study with DNP at 140 MHz/94 GHz.

机构信息

Max Planck Institute for Biophysical Chemistry, Am Fassberg 11, 37077 Göttingen, Germany.

出版信息

Phys Chem Chem Phys. 2010 Jun 14;12(22):5893-901. doi: 10.1039/c002814m. Epub 2010 May 8.

Abstract

Dynamic nuclear polarization is emerging as a potential tool to increase the sensitivity of NMR aiming at the detection of macromolecules in liquid solution. One possibility for such an experimental design is to perform the polarization step between electrons and nuclei at low magnetic fields and then transfer the sample to a higher field for NMR detection. In this case, an independent optimization of the polarizer and detection set ups is required. In the present paper we describe the optimization of a polarizer set up at 15 MHz (1)H NMR/9.7 GHz EPR frequencies based on commercial hardware. The sample consists of the nitroxide radical TEMPONE-D,(15)N in water, for which the dimensions were systematically decreased to fit the homogeneous B(1) region of a dielectric ENDOR resonator. With an available B(1) microwave field up to 13 G we observe a maximum DNP enhancement of -170 at room temperature by irradiating on either one of the EPR lines. The DNP enhancement was saturated at all polarizer concentrations. Pulsed ELDOR experiments revealed that the saturation level of the two hyperfine lines is such that the DNP enhancements are well consistent with the coupling factors derived from NMRD data. By raising the polarizing field and frequencies 10-fold, i.e. to 140 MHz (1)H/94 GHz EPR, we reach an enhancement of -43 at microwave field strengths (B(1) approximately 5 G). The results are discussed in view of an application for a DNP spectrometer.

摘要

动态核极化作为一种提高 NMR 灵敏度的潜在工具正在出现,旨在检测液体溶液中的大分子。这种实验设计的一种可能性是在低磁场下进行电子和核之间的极化步骤,然后将样品转移到更高的磁场进行 NMR 检测。在这种情况下,需要对极化器和检测装置进行独立优化。在本文中,我们描述了基于商业硬件在 15 MHz (1)H NMR/9.7 GHz EPR 频率下优化极化器装置。样品由水中的氮氧化物自由基 TEMPONE-D,(15)N 组成,其尺寸被系统减小以适应介电 ENDOR 谐振器的均匀 B(1)区域。在可用的 B(1)微波场高达 13 G 的情况下,我们通过照射 EPR 线中的任一条,在室温下观察到最大的 DNP 增强为-170。在所有极化器浓度下,DNP 增强都达到饱和。脉冲 ELDOR 实验表明,两条超精细线的饱和水平使得 DNP 增强与从 NMRD 数据得出的耦合因子非常一致。通过将极化场和频率提高 10 倍,即提高到 140 MHz (1)H/94 GHz EPR,我们在微波场强(B(1)约为 5 G)下达到-43 的增强。结果根据 DNP 光谱仪的应用进行了讨论。

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